scholarly journals Relationship between Efficiency and Figure-of-merit in Wireless Power Transfer through Electromagnetic Induction

2011 ◽  
Vol 35 (2) ◽  
pp. 132-135 ◽  
Author(s):  
T. Takura ◽  
Y. Ota ◽  
K. Kato ◽  
F. Sato ◽  
H. Matsuki ◽  
...  
2017 ◽  
Vol 32 (6) ◽  
pp. 4359-4369 ◽  
Author(s):  
Jayathurathnage Prasad K. Sampath ◽  
Arokiaswami Alphones ◽  
D. Mahinda Vilathgamuwa

2021 ◽  
Author(s):  
Lucas Ricken Garcia ◽  
Paulo José Abatti

Two-coil wireless power transfer (WPT) systems are composed of two circuits tuned at the same resonance frequency, one containing the source, and other containing the load, both connected to each other by the mutual inductance. The power delivered to the load circuit (Po) divided by the total power supplied by the source (PT) and by the maximum ideal amount of power which can be delivered to the load circuit are usual figures of merit known as efficiency (n) and power transfer capability (P*), respectively. Additionally, it can be defined a third figure of merit (I*) as the power dissipated at the source circuit divided by PT. It has been recently demonstrated that n and P* are related to I* . In this paper, it is presented a simple method to monitor I*, allowing consequently the determination of n and/or P* without any direct measurement at the load circuit. The qualities and limitations of the proposed method are discussed in details. Practical results are included to verify the proposal.


2021 ◽  
Vol 11 (1) ◽  
Author(s):  
Xin Jiang ◽  
Ramesh K. Pokharel ◽  
Adel Barakat ◽  
Kuniaki Yoshitomi

AbstractTo release more flexibility for users to charge their portable devices, researchers have increasingly developed compact wireless power transfer (WPT) systems in recent years. Also, a dual-band WPT system is proposed to transfer power and signal simultaneously, enriching the system’s functionality. Moreover, a stacked metasurface has recently been proposed for a single band near-field WPT system. In this study, a novel multimode self-resonance-enhanced wideband metasurface is proposed for a robust dual-band WPT system, which significantly improves the performance of both bands. The size of the transmitter (Tx) and the receiver (Rx) are both 15 mm × 15 mm only. The proposed metasurface can improve efficiency from 0.04 up to 39% in the best case. The measured figure of merit (FoM) is 2.09 at 390 MHz and 2.16 at 770 MHz, respectively, in the balanced mode. Especially, the FoM can reach up to 4.34 in the lower mode. Compared to the previous state-of-the-art for similar applications, the WPT performance has significantly been improved.


2021 ◽  
Author(s):  
Lucas Ricken Garcia ◽  
Paulo José Abatti

Two-coil wireless power transfer (WPT) systems are composed of two circuits tuned at the same resonance frequency, one containing the source, and other containing the load, both connected to each other by the mutual inductance. The power delivered to the load circuit (Po) divided by the total power supplied by the source (PT) and by the maximum ideal amount of power which can be delivered to the load circuit are usual figures of merit known as efficiency (n) and power transfer capability (P*), respectively. Additionally, it can be defined a third figure of merit (I*) as the power dissipated at the source circuit divided by PT. It has been recently demonstrated that n and P* are related to I* . In this paper, it is presented a simple method to monitor I*, allowing consequently the determination of n and/or P* without any direct measurement at the load circuit. The qualities and limitations of the proposed method are discussed in details. Practical results are included to verify the proposal.


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